北极植物-真菌相互作用网络随环境变化出现重大重构

IF 8.1 1区 地球科学 Q1 ENVIRONMENTAL SCIENCES Communications Earth & Environment Pub Date : 2024-11-23 DOI:10.1038/s43247-024-01902-w
Bastien Parisy, Niels M. Schmidt, Alyssa R. Cirtwill, Edith Villa-Galaviz, Mikko Tiusanen, Cornelya F. C. Klütsch, Paul E. Aspholm, Katrine Raundrup, Eero J. Vesterinen, Helena Wirta, Tomas Roslin
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引用次数: 0

摘要

全球环境变化可能导致群落结构和物种相互作用发生变化,最终改变生态系统的功能。我们以瞬息万变的北极地区真菌-植物相互作用的空间变化为重点,量化了相互作用伙伴身份的变化。然后,我们将网络分析与一般相似性建模相结合,将相互作用的更替与生物气候环境的变化联系起来。总体而言,我们发现物种之间的联系具有高度可塑性,在不同的环境条件下,相互作用伙伴之间的关系会发生重大变化。在这种变化中,很大一部分归因于特定的环境属性,而这些属性很可能会随着气候变化的加剧而发生变化。我们的研究结果表明,当前植物与根系的相互作用结构可能会因全球气候迅速变暖而发生严重改变。不过,灵活选择合作伙伴可能有助于提高系统的复原力。根据使用DNA代谢编码数据建立的植物和真菌群落模型,北极地区真菌与植物之间的相互作用非常灵活,在温度和土壤条件不断变化的情况下也会发生改变。
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Arctic plant-fungus interaction networks show major rewiring with environmental variation
Global environmental change may lead to changes in community structure and in species interactions, ultimately changing ecosystem functioning. Focusing on spatial variation in fungus–plant interactions across the rapidly changing Arctic, we quantified variation in the identity of interaction partners. We then related interaction turnover to variation in the bioclimatic environment by combining network analyses with general dissimilarity modelling. Overall, we found species associations to be highly plastic, with major rewiring among interaction partners across variable environmental conditions. Of this turnover, a major part was attributed to specific environmental properties which are likely to change with progressing climate change. Our findings suggest that the current structure of plant-root associated interactions may be severely altered by rapidly advancing global warming. Nonetheless, flexibility in partner choice may contribute to the resilience of the system. Fungus-plant interactions in the Arctic are highly pliable and can alter under changing temperature and soil conditions, according to modelling of plant and fungal communities using DNA metabarcoding data.
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来源期刊
Communications Earth & Environment
Communications Earth & Environment Earth and Planetary Sciences-General Earth and Planetary Sciences
CiteScore
8.60
自引率
2.50%
发文量
269
审稿时长
26 weeks
期刊介绍: Communications Earth & Environment is an open access journal from Nature Portfolio publishing high-quality research, reviews and commentary in all areas of the Earth, environmental and planetary sciences. Research papers published by the journal represent significant advances that bring new insight to a specialized area in Earth science, planetary science or environmental science. Communications Earth & Environment has a 2-year impact factor of 7.9 (2022 Journal Citation Reports®). Articles published in the journal in 2022 were downloaded 1,412,858 times. Median time from submission to the first editorial decision is 8 days.
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